1

I have a lists of lists that I want to convert into a 4 value dictionary where the first value in each list is the key. So for example the list would be:

[['267-10-7633', '66', '85', '74', 0], ['709-40-8165', '71', '96', '34', 0]]

and i want it to be

{"267-10-7633":[66,85,74,0], "709-40-8165", [71,96,34,0] }
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3

You can use a dictionary comprehension:

lst = [['267-10-7633', '66', '85', '74', 0], ['709-40-8165', '71', '96', '34', 0]]

{k: v for k, *v in lst}       
# {'267-10-7633': ['66', '85', '74', 0], '709-40-8165': ['71', '96', '34', 0]}

If you are on python2, seems like you can't use *v to unpack multiple elements:

{x[0]: x[1:] for x in lst}  
# {'267-10-7633': ['66', '85', '74', 0], '709-40-8165': ['71', '96', '34', 0]}

Didn't take care of the type conversion here. I guess you can refer to other answers as to how to do that.

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  • 1
    According to the question, I think you should convert the strings to integer in the list. Py2 ver: {x[0]: map(int, x[1:]) for x in lst}. – JRodDynamite Feb 19 '17 at 0:24
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    @JRodDynamite That would open up another issue of Py2 vs Py3 where you'd need list(map(int, x[1:])). – schwobaseggl Feb 19 '17 at 0:27
  • @JRodDynamite I think your comment has been a good complement to the answer, in case of python 3: {k: list(map(int, v)) for k, *v in lst} – Psidom Feb 19 '17 at 0:29
1

A dict comprehension to compile the dictionary with a list comprehension to convert the strings to int:

> lst = [['267-10-7633', '66', '85', '74', 0], ['709-40-8165', '71', '96', '34', 0]]
> {l[0]: [int(x) for x in l[1:]] for l in lst}
{'267-10-7633': [66, 85, 74, 0], '709-40-8165': [71, 96, 34, 0]}
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0

A simple and straight forward solution.

lst = [['267-10-7633', '66', '85', '74', 0], ['709-40-8165', '71', '96', '34', 0]]

# create an empty dict
new_dict = {}

# iterate through the list
for item in lst:

    # key is first element in the inner list
    # value is second element in the inner list
    key = item[0]
    value = item[1:]
    new_dict[key] = value

print new_dict
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0

List comprehensions is suitable in this case

{element[0]: [int(x) for x in element[1:]] for element in\
    [['267-10-7633', '66', '85', '74', 0], ['709-40-8165', '71', '96', '34', 0]]}
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0

A simple approach:

your_list = [['267-10-7633', '66', '85', '74', 0], ['709-40-8165', '71', '96', '34', 0]]

dictionary = {}
for item in your_list:
    dictionary[item[0]] = [int(i) for i in item[1:]]

print(dictionary) 

With list and dict comprehension:

dictionary = {item[0]: [int(i) for i in item[1:]] for item in your_list}
print(dictionary)

In both cases, output:

{'267-10-7633': [66, 85, 74, 0], '709-40-8165': [71, 96, 34, 0]}
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0
ll = [['267-10-7633', '66', '85', '74', 0], ['709-40-8165', '71', '96', '34', 0]]

mydict = {}
for item in ll:
  key,*values = item
  mydict[key] = values

print(mydict)
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